US8208017B2 - Imaging device, product package, and semiconductor integrated circuit - Google Patents
Imaging device, product package, and semiconductor integrated circuit Download PDFInfo
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- US8208017B2 US8208017B2 US10/596,819 US59681904A US8208017B2 US 8208017 B2 US8208017 B2 US 8208017B2 US 59681904 A US59681904 A US 59681904A US 8208017 B2 US8208017 B2 US 8208017B2
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/68—Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
- H04N23/681—Motion detection
- H04N23/6812—Motion detection based on additional sensors, e.g. acceleration sensors
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/68—Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/68—Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
- H04N23/681—Motion detection
- H04N23/6815—Motion detection by distinguishing pan or tilt from motion
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/63—Control of cameras or camera modules by using electronic viewfinders
- H04N23/633—Control of cameras or camera modules by using electronic viewfinders for displaying additional information relating to control or operation of the camera
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/667—Camera operation mode switching, e.g. between still and video, sport and normal or high- and low-resolution modes
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/68—Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
- H04N23/682—Vibration or motion blur correction
- H04N23/683—Vibration or motion blur correction performed by a processor, e.g. controlling the readout of an image memory
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/68—Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
- H04N23/682—Vibration or motion blur correction
- H04N23/684—Vibration or motion blur correction performed by controlling the image sensor readout, e.g. by controlling the integration time
- H04N23/6842—Vibration or motion blur correction performed by controlling the image sensor readout, e.g. by controlling the integration time by controlling the scanning position, e.g. windowing
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N23/00—Cameras or camera modules comprising electronic image sensors; Control thereof
- H04N23/60—Control of cameras or camera modules
- H04N23/68—Control of cameras or camera modules for stable pick-up of the scene, e.g. compensating for camera body vibrations
- H04N23/682—Vibration or motion blur correction
- H04N23/685—Vibration or motion blur correction performed by mechanical compensation
- H04N23/687—Vibration or motion blur correction performed by mechanical compensation by shifting the lens or sensor position
Definitions
- the present invention relates to an image pickup apparatus capable of obtaining locus information required for the correction of the shaking motion, a product package including the image pickup apparatus and a recording medium having a program recorded thereon, and a semiconductor integrated circuit.
- an optical camera shaking correction method and an electronic shaking motion correction method are known (see, for example, Reference 1 below).
- the technique using the optical camera shaking correction method is known as a technique for correcting the camera shaking of a static image.
- the technique using the electronic camera shaking correction method is known as a technique for correcting the camera shaking of a moving image. This technique does not require any optical driving section. Therefore, it is possible to reduce the size of the apparatus.
- Reference 1 Japanese Laid-Open Publication No. 60-143330
- the technique using the optical camera shaking correction method is effective for taking a static image without degrading the quality of the image.
- it requires an optical driving section. For this reason, a reduction in the size of the apparatus is limited.
- the technique using the electronic camera shaking correction method does not require any optical driving section. Therefore, it is possible to reduce the size of the apparatus. However, it has been considered that this technique is not effective for correcting the camera shaking of a static image. This is because this technique performs only a correction between a plurality of frames and it is impossible in principle to perform the camera shaking correction for a static image consisting of a single frame.
- the object of the present invention is to provide an image pickup apparatus capable of obtaining locus information required for the correction of the shaking motion, a product package including the image pickup apparatus and a recording medium having a program recorded thereon, and a semiconductor integrated circuit.
- An image pickup apparatus of the present invention includes: a shaking motion detecting section for detecting a shaking motion of the image pickup apparatus and for outputting a shaking motion detection signal indicating the shaking motion of the image pickup apparatus; an image forming section for forming an optical image by focusing light incident to the image pickup apparatus; an image pickup section for converting the optical image formed by the image forming section into electric video information; and a locus calculating section for obtaining locus information indicating a locus of the shaking motion of the image pickup apparatus based on at least the shaking motion detection signal output from the shaking motion detecting section.
- the locus calculating section may obtain, as the locus information, information indicating a change in the shaking motion detection signal during a predetermined period of time.
- the shaking motion detecting section may include an angle velocity sensor, and the locus calculating section may obtain angle information by integrating an output from the angle velocity sensor, and may obtain, as the locus information, information indicating a change in the angle information during a predetermined period of time.
- the angle velocity sensor may be a vibration gyroscope having a plurality of vibration frequencies which are different from each other.
- the locus calculating section may obtain, as the locus information, information indicating a locus weighted by the shaking motion of the image pickup apparatus.
- the locus calculating section may obtain, as the locus information, a point spread function PSF.
- the locus calculating section may determine whether or not an amount of temporal change in the shaking motion of the image pickup apparatus is larger than a predetermined threshold value, and may determine a number of samples in accordance with the determination result.
- the image pickup apparatus may further include: an output section for generating data in an Exif format by adding the locus information to the video information, and for outputting the data in the Exif format.
- the locus calculating section may obtain the locus information based on at least focus information, zoom information, and the shaking motion detection signal.
- the image pickup apparatus may further includes: an electronic shaking motion correcting section for performing a calculation processing on the locus information and the video information, so as to obtain corrected video information which is subjected to the correction of the shaking motion.
- the electronic shaking motion correcting section may determine whether or not the shaking motion detection signal is larger than a predetermined threshold value, and when it is determined that the shaking motion detection signal is larger than the predetermined threshold value, the electronic shaking motion correcting section may not correct the shaking motion in the video information.
- the calculation processing may include a Fourier transform, a Fourier inverse transform, or a processing using a two-dimensional filter.
- the locus information may include a locus function h
- the calculation processing may include a calculation of a Fourier transform of h or a calculation using a result of the Fourier transform of h, or the calculation processing may include a calculation of a Fourier inverse transform which is a reciprocal of the Fourier transform of h or a calculation using a result of the Fourier inverse transform which is the reciprocal of the Fourier transform of h.
- the image pickup apparatus may further include: a processing amount calculating section for calculating a calculation processing amount required for correcting the shaking motion in the video information.
- a display indicating an exceeding situation may be made on a display section and/or a sound indicating an exceeding situation may be generated from a speaker.
- the video information which is not subjected to the correction of the shaking motion may be output, and when the calculation processing amount is within a predetermined range, corrected video information which is subjected to the correction of the shaking motion in the video information may be output.
- the corrected video information may be displayed on the display section.
- Time at which the calculation processing for the correction of the shaking motion in the electronic shaking motion correcting section is completed may be used as the specific time.
- the image pickup apparatus may further includes: a maximum shaking motion amount calculating section for receiving the corrected video information from the shaking motion correcting section, and for calculating a maximum shaking motion amount of the shaking motion in each direction; and a trimming section for trimming the corrected video information in accordance with the maximum shaking motion amount, so as to generate trimmed corrected video information.
- a maximum shaking motion amount calculating section for receiving the corrected video information from the shaking motion correcting section, and for calculating a maximum shaking motion amount of the shaking motion in each direction
- a trimming section for trimming the corrected video information in accordance with the maximum shaking motion amount, so as to generate trimmed corrected video information.
- the image pickup apparatus may further include: a setting section capable of setting a first trimming mode or a second trimming mode, wherein in the first trimming mode, the trimming section may trim the corrected video information in accordance with the maximum shaking motion amount, so as to generate a first trimmed corrected video information, and in the second trimming mode, the trimming section may trim the first trimmed corrected video information, as a center of a pixel corresponding to a center pixel of the first trimmed corrected video information, so as to generate a second trimmed corrected video information, the center pixel being a pixel located at a center of the video information in each direction.
- a setting section capable of setting a first trimming mode or a second trimming mode
- the image pickup apparatus may further include: a mechanical shaking motion correcting section for mechanically correcting the shaking motion of the image pickup apparatus in accordance with the shaking motion detection signal, so as to obtain corrected video information which is subjected to the correction of the shaking motion in the video information by an actual shaking motion correction amount, wherein the locus calculating section may obtain, as the locus information, information indicating a change during a predetermined period of time in a difference between the shaking motion detection signal and the actual shaking motion correction amount.
- the locus information may be in an Exif format.
- the mechanical shaking motion correcting section may mechanically correct the shaking motion of the image pickup apparatus in accordance with the shaking motion detection signal, so as to obtain a first corrected video information which is subjected to the correction of the shaking motion in the video information by a first shaking motion correction amount
- the locus calculating section may obtain, as the locus information, information indicating a change in a remaining shaking motion amount during a predetermined period of time, the remaining shaking motion amount indicating a difference between the actual shaking motion correction amount and the first shaking motion correction amount
- the image pickup apparatus may further include: an electronic shaking motion correcting section for performing a calculation processing on the locus information and the first corrected video information, so as to obtain a second corrected video information which is subjected to the correction of the shaking motion in the first corrected video information by a second shaking motion correction amount.
- the calculation processing may include a Fourier transform, a Fourier inverse transform, or a processing using a two-dimensional filter.
- the locus information may include a locus function h
- the calculation processing may include a calculation of a Fourier transform of h or a calculation using a result of the Fourier transform of h, or the calculation processing may include a calculation of a Fourier inverse transform which is a reciprocal of the Fourier transform of h or a calculation using a result of the Fourier inverse transform which is the reciprocal of the Fourier transform of h.
- the mechanical shaking motion correcting section may calculate the first shaking motion correction amount based on positional information of a lens which is a part of the image forming section.
- the mechanical shaking motion correcting section may calculate the first shaking motion correction amount based on the shaking motion detection signal and a shaking motion control characteristic of the mechanical shaking motion correcting section.
- the shaking motion detecting section may include: a first shaking motion detecting section for detecting a shaking motion in a pitch direction and a shaking motion in a yaw direction among the shaking motions of the image pickup apparatus; and a second shaking motion detecting section for detecting a shaking motion in a roll direction among the shaking motions of the image pickup apparatus, the locus calculating section may obtain, as the locus information, information indicating a change during a predetermined period of time in a detection signal output from the second shaking motion detecting section, and the image pickup apparatus may further include: a mechanical shaking motion correcting section for obtaining a first corrected video information which is subjected to the correction of the shaking motion in the pitch direction and the correction of the shaking motion in the yaw direction in accordance with a detection signal output from the first shaking motion detecting section.
- the image pickup apparatus may further include: a section for adding the locus information to the corrected video information for output, or for recording the locus information onto a recording medium.
- the locus information may be in an Exif format or a format similar to the Exif format.
- the image pickup apparatus may further include: an electronic shaking motion correcting section for obtaining a second corrected video information, which is subjected to the correction of the shaking motion in the first corrected video information, by performing a calculation processing on locus information in the roll direction and the first corrected video information.
- the calculation processing may include a Fourier transform, a Fourier inverse transform, or a processing using a two-dimensional filter.
- the locus information may include a locus function h
- the calculation processing may include a calculation of a Fourier transform of h or a calculation using a result of the Fourier transform of h, or the calculation processing may include a calculation of a Fourier inverse transform which is a reciprocal of the Fourier transform of h or a calculation using a result of the Fourier inverse transform which is the reciprocal of the Fourier transform of h.
- a method of the present invention includes: receiving image information including locus information indicating a locus of a shaking motion of an image pickup apparatus and video information; separating the image information into the locus information and the video information; and obtaining corrected video information, which is subjected to the correction of the shaking motion in the video information, by performing a calculation processing on the locus information and the video information.
- the locus information may be in an Exif format.
- the calculation processing may include a Fourier transform or a Fourier inverse transform.
- the locus information may be a weighted locus or a point spread function.
- a product package of the present invention includes an image pickup apparatus and a recording medium, wherein the image pickup apparatus includes: a shaking motion detecting section for detecting a shaking motion of the image pickup apparatus and for outputting a shaking motion detection signal indicating the shaking motion of the image pickup apparatus; an image forming section for forming an optical image by focusing light incident to the image pickup apparatus; an image pickup section for converting the optical image formed by the image forming section into electric video information; a locus calculating section for obtaining locus information indicating a locus of the shaking motion of the image pickup apparatus based on at least the shaking motion detection signal output from the shaking motion detecting section; and an outputting section for adding the locus information to the video information to output image information, and the recording medium has a program recorded therein, the program is for causing a computer to execute a processing, the processing includes: receiving the image information; separating the image information into the locus information and the video information; and obtaining corrected video information, which is subjected to the correction of the shaking motion in the video information, by performing
- the locus information may be in an Exif format.
- the calculation processing may include a Fourier transform, a Fourier inverse transform, or a processing using a two-dimensional filter.
- the locus information may include a locus function h
- the calculation processing may include a calculation of a Fourier transform of h or a calculation using a result of the Fourier transform of h, or the calculation processing may include a calculation of a Fourier inverse transform which is a reciprocal of the Fourier transform of h or a calculation using a result of the Fourier inverse transform which is the reciprocal of the Fourier transform of h.
- the locus information may be a weighted locus or a point spread function.
- a product package of the present invention includes an image pickup apparatus and a recording medium, wherein the image pickup apparatus includes: a shaking motion detecting section for detecting a shaking motion of the image pickup apparatus and for outputting a shaking motion detection signal indicating the shaking motion of the image pickup apparatus; an image forming section for forming an optical image by focusing light incident to the image pickup apparatus; an image pickup section for converting the optical image formed by the image forming section into electric video information; a locus calculating section for obtaining locus information indicating a locus of the shaking motion of the image pickup apparatus based on at least the shaking motion detection signal output from the shaking motion detecting section; a mechanical shaking motion correcting section for mechanically correcting the shaking motion of the image pickup apparatus in accordance with the shaking motion detection signal, so as to obtain corrected video information which is subjected to the correction of the shaking motion in the video information by an actual shaking motion correction amount; and an outputting section for adding the locus information to the video information to output image information, the locus calculating section obtains, as the locus information,
- the locus information may be in an Exif format.
- the calculation processing may include a Fourier transform, a Fourier inverse transform, or a processing using a two-dimensional filter.
- the locus information may be a weighted locus or a point spread function.
- a semiconductor integrated circuit of the present invention includes: a locus calculating section for obtaining locus information indicating a locus of a shaking motion of an image pickup apparatus based on at least a shaking motion detection signal output from a shaking motion detecting section for detecting the shaking motion of the image pickup apparatus.
- the semiconductor integrated circuit may further include: an electronic shaking motion correcting section for obtaining corrected video information which is subjected to the correction of the shaking motion in the video information, by performing a calculation processing on the locus information and the video information.
- the semiconductor integrated circuit may further include: a mechanical shaking motion correcting section for mechanically correcting the shaking motion of the image pickup apparatus in accordance with the shaking motion detection signal, so as to obtain corrected video information which is subjected to the correction of the shaking motion in the video information by an actual shaking motion amount, wherein the locus calculating section may obtain, as the locus information, information indicating a change during a predetermined period of time in a difference between the shaking motion detection signal and the actual shaking motion correction amount.
- the shaking motion detecting section may include: a first shaking motion detecting section for detecting a shaking motion in a pitch direction and a shaking motion in a yaw direction among the shaking motions of the image pickup apparatus; and a second shaking motion detecting section for detecting a shaking motion in a roll direction among the shaking motions of the image pickup apparatus, the locus calculating section may obtain, as the locus information, information indicating a change during a predetermined period of time in a detection signal output from the second shaking motion detecting section, and the semiconductor integrated circuit may further include: a mechanical shaking motion correcting section for obtaining a first corrected video information which is subjected to the correction of the shaking motion in the pitch direction and the correction of the shaking motion in the yaw direction in accordance with a detection signal output from the first shaking motion detecting section.
- the locus information may be output to a device external to the image pickup apparatus (e.g., a computer).
- a device external to the image pickup apparatus e.g., a computer
- FIG. 1 is a diagram showing an image pickup apparatus 100 according to an embodiment of the present invention.
- FIG. 2 is a view showing a structure of the shaking motion detecting section 15 .
- FIG. 3 is a view showing an operation for correcting the shaking motion according to an embodiment of the present invention.
- FIG. 4 is a view showing a masking operation according to an embodiment of the present invention.
- FIG. 5 is a chart showing a relationship between the number of pixels and the frame frequency.
- FIG. 6 is a view showing a structure of the image pickup section 5 including a pixel region divided into four parts.
- FIG. 7 is a view showing an operation in the case where the frame rate is increased according to an embodiment of the present invention.
- FIG. 8 is a flowchart showing a procedure of the image pickup process (steps 50 a to 50 f ) according to an embodiment of the present invention.
- FIG. 9 is a flowchart showing a procedure of the image pickup process (steps 51 a to 51 f according to an embodiment of the present invention.
- FIG. 10 is a flowchart showing a procedure of the image pickup process (steps 52 a to 52 t ) according to an embodiment of the present invention.
- FIG. 11 is a flowchart showing a procedure of the sequential calculation process according to an embodiment of the present invention.
- FIG. 12 is a flowchart showing a procedure of the simultaneous calculation process according to an embodiment of the present invention.
- FIG. 13 is a flowchart showing a procedure of a process for correcting the shaking motion by integrating a plurality of images (divided images) in accordance with a shutter speed (exposure time) and a brightness in the place where a picture is to be taken.
- FIG. 14 is a flowchart showing a procedure of a process for changing a resolution by adding pixels in an in-plane direction and adding pixels in the time axis direction.
- FIG. 15 is a view showing a principle for correcting the shaking motion, by setting the number of pixels which is larger than the number of actual pixels according to an embodiment of the present invention.
- FIG. 16 is a diagram showing a method for adding pixels in an in-plane direction.
- FIG. 17 is a diagram for explaining a shift of the cut-out position of an image.
- FIG. 18 is a diagram showing a principle for the reducing interpolation, a principle of the enlarging interpolation and a principle of correcting the shaking motion with a high resolution.
- FIG. 19 is a flowchart showing a procedure of a process for removing an image for which the detection of the shaking motion fails.
- FIG. 20 is a diagram showing a structure of an image pickup apparatus 200 according to an embodiment of the present invention.
- FIG. 21 is a diagram showing an example of the display section 95 included in the image pickup apparatus 200 .
- FIG. 22 is a diagram showing another example of the display section 95 included in the image pickup apparatus 200 .
- FIG. 23 is a diagram showing a display of the boundary indicator 97 for taking a picture in a panning manner or in a panoramic manner.
- FIG. 24 is a diagram showing a detection point for detecting the shaking motion within a frame.
- FIG. 25 is a diagram showing an image pickup apparatus 1 according to an embodiment of the present invention.
- FIG. 26 is a diagram showing sampling of shaking motion detection signals according to an embodiment of the present invention.
- FIG. 27 is a diagram showing trimming and enlargement of a captured image according to an embodiment of the present invention.
- FIG. 28 is a flowchart showing a procedure of the image pickup process (steps 127 to 127 j ) according to an embodiment of the present invention.
- FIG. 29 is a flowchart showing a procedure of the image pickup process (steps 128 a to 128 g ) according to an embodiment of the present invention.
- FIG. 30 is a diagram showing an image pickup apparatus 1 according to an embodiment of the present invention.
- FIG. 31 is a diagram showing an image pickup apparatus 1 which outputs the locus data in the z direction according to an embodiment of the present invention.
- FIG. 32 is a diagram showing an image pickup apparatus 1 which performs the correction of the shaking motion in the z direction according to an embodiment of the present invention.
- FIG. 33 is a diagram showing an image pickup apparatus 1 which performs the optical correction and the data processing correction according to an embodiment of the present invention.
- FIG. 34 is a diagram showing a calculation for the correction of the shaking motion according to an embodiment of the present invention.
- FIG. 35 is a diagram showing a combination of the image pickup apparatus according to an embodiment of the present invention and a correction processing program, and a computer for the correction processing.
- FIG. 36 is a diagram showing a structure of a correction amount detecting section included in the image pickup apparatus according to an embodiment of the present invention.
- FIG. 1 shows an image pickup apparatus 100 according to an embodiment of the present invention.
- the image pickup apparatus 100 takes a static image (i.e. a still image) during a predetermined exposure period.
- the image pickup apparatus 100 includes a lens section 2 for receiving light incident on the image pickup apparatus 100 from the outside of the image pickup apparatus 100 ; an auto-focusing section 4 for automatically adjusting a focus of the light 3 ; a zoom section 6 for setting a zoom ratio of the lens section 2 ; and an image pickup section 5 .
- An optical image is formed on the image pickup section 5 .
- the image pickup section 5 outputs data indicating the formed optical image.
- the image pickup section 5 is, for example, a CCD or a MOS type imaging device.
- the focus of the light 3 from the lens section 2 is automatically adjusted by the auto-focusing section 4 .
- the zoom ratio of the lens section 2 is set by the zoom section 6 .
- An optical image 7 is formed on the image pickup section 5 .
- the image pickup apparatus 100 further includes a display switching section 10 ; a display circuit 11 ; a display section 12 ; a recording section 13 and a recording medium 140
- a static image is taken without correcting any shaking motion in static image data representing the static image
- the output data output from the image pickup section 5 is directly sent to the display switching section 10 .
- the output data output from the image pickup section 5 is displayed on the display section 12 by the display circuit 11 .
- the output data output from the image pickup section 5 is recorded on the recording medium 14 by the recording section 13 .
- the image pickup apparatus 100 further includes a shutter button 25 ; a sub-image memory 8 for storing data; a shaking motion detecting section 15 for detecting an amount of the shaking motion between a plurality of images (frames) representing a static image taken; a shaking motion correcting section 9 for correcting a plurality of image information indicating the plurality of images (frames) in accordance with the amount of the detected shaking motion; a shaking motion correcting control section 21 ; a trimming section 22 to be controlled to remove a shaking motion in a longitudinal direction; a resolution changing section 24 for changing a resolution of an image indicated by screen data; a decimation control section 25 a ; a pixel transfer section 23 ; and a frame rate changing section 40 for changing a frame rate in accordance with the amount of the shaking motion.
- a shutter button 25 for storing data
- a sub-image memory 8 for storing data
- a shaking motion detecting section 15 for detecting an amount of the shaking motion between a plurality of images (frames) representing
- the shaking motion detecting section 15 includes a calculating section 18 for calculating data input to the shaking motion detecting section 15 , a first memory 16 and a second memory 17 .
- the shaking motion correcting control section 21 controls each of the components in order to correct the output data output from the image pickup section 5 in accordance with the amount of the detected shaking motion.
- the output data output from the image pickup section 5 is accumulated in the sub-image memory 8 before the shutter button 25 is pressed down.
- the output data output from the image pickup section 5 is input to the shaking motion detecting section 15 .
- the calculating section 18 calculates a plurality of output data which are input to the shaking motion detecting section 15 (for example, the (n ⁇ 1)-th image data (i.e. previous screen data) and the n-th image data (i.e. current screen data)) so as to obtain shaking motion information indicating the shaking motion.
- the shaking motion information is a motion vector 19 .
- the image pickup apparatus 100 includes a longitudinal oscillating gyro and a lateral oscillating gyro, it is also possible to detect an amount of the shaking motion in the longitudinal direction and an amount of the shaking motion in the lateral direction.
- the shaking motion information is an amount of the shaking motion in the longitudinal direction and an amount of the shaking motion in the lateral direction.
- the shaking motion correcting control section 21 controls the trimming section 22 and the pixel transfer section 23 , such that the shaking motion in the longitudinal direction can be removed.
- the shaking motion correcting control section 21 controls the shaking motion correcting section 9 , such that the shaking motion in the lateral direction can be removed.
- the image data subjected to the correction of the shaking motion is sequentially output to the display section 12 via the display switching section 10 .
- a user can visually recognize continuous images which are subjected to the correction of the shaking motion at a predetermined frame rate.
- the display section 12 it is also possible to display an image corresponding to a part of the entire image represented by the image data which is subjected to the correction of the shaking motion. Accordingly, it is possible to accurately perform a framing of an object.
- the resolution is set to a resolution which is lower than a resolution when a static image is taken, by the resolution changing section 24 and the decimation control section 25 a . Accordingly, it is possible to increase the frame rate, thereby increasing the number of frames to be displayed per second. As a result, the user can visually recognize the image of the object more smoothly.
- the recording section 13 may record a plurality of images having a high frame rate on the recording medium 14 as a moving image.
- the resolution changing section 24 changes the resolution of a plurality of frames in accordance with at least one of a brightness, an amount of the shaking motion, and a zoom rate, for example.
- the image pickup apparatus 100 further includes a clock control section 27 ; a transfer clock supply section 32 ; a processing clock supply section 28 ; and a CPU 26 .
- the CPU 26 provides an instruction to the clock control section 27 , such that the processing clock supply section 28 starts the operation of a clock (e.g. a clock of a calculating section 29 and the like) or increases a clock speed.
- a clock e.g. a clock of a calculating section 29 and the like
- the image pickup apparatus 100 further includes a main image memory 30 for storing a plurality of image information subjected to the correction of the shaking motion; a calculating section 29 for generating static image information indicating a static image based on the plurality of image information stored in the storage section; and a sub-calculating section 29 a .
- the detailed description of the functions of the calculating section 29 , the main image memory 30 and the sub-calculating section 29 a will be provided later.
- the image pickup apparatus 100 further includes a masking section 20 and a bright part extracting section 39 .
- the detailed description of the functions of the masking section 20 and the bright part extracting section 39 will be provided later.
- the image pickup apparatus 100 further includes a vibrator 36 and a speaker 37 .
- the detailed description of the functions of the vibrator 36 and the speaker 37 will be provided later.
- FIG. 2 shows a structure of the shaking motion detecting section 15 .
- the shaking motion detecting section 15 includes the calculating section 18 , the first memory 16 and the second memory 17 .
- the amount of shaking motion e.g. a motion vector (x 1 , y 1 )
- the amount of shaking motion is detected based on data indicating two images (image data indicating the image D n — 1 and image data indicating the image data D n ), and data indicating the amount of the shaking motion is output.
- FIG. 3 shows an operation for correcting the shaking motion according to an embodiment of the present invention.
- the shaking motion is caused by at least one hand of an operator.
- the corrected image data is added to the data indicating the result of the addition stored in the main image memory 30 by the calculating section 29 .
- Data indicating the result of the addition is stored in the main image memory 30 .
- the corrected image data is added to the data indicating the result of the addition stored in the main image memory 30 by the calculating section 29 .
- Data indicating the result of the addition is stored in the main image memory 30 .
- the four image data which indicate almost identical images are stored in the main image memory 30 , in which data indicating a static image is generated.
- a shutter opening time Exposure time
- a frame rate in accordance with the degree of the shaking motion (i.e. a shaking motion amount) and the zoom ratio, it is possible to electronically correct the shaking motion without degrading the S/N.
- the shutter opening time for taking each image is shortened, the degradation of the image due to the correction of the shaking motion is reduced, but the amount of light is also reduced. In this case, the number of frames to be taken should be increased.
- the calculation performed by the calculating section 29 is not limited to the addition.
- the calculation may be an integration, for example, as long as data indicating a static image can be generated based on a plurality of image data (frame information).
- FIG. 4 shows a masking operation according to an embodiment of the present invention.
- the bright part extracting section 39 extracts data indicating the bright part 38 a from data indicating the image 35 e and generates masking data 31 based on the extracted data indicating the bright part.
- Data indicating a corrected image 33 a is generated by deleting an image of the bright part 38 b and correcting the shaking motion.
- the data indicating the corrected image 33 a is added to the data indicating the image 35 e , so as to generate data indicating an integrated image 35 a.
- Data indicating a corrected image 33 b is generated by deleting an image of the bright part 38 c and correcting the shaking motion.
- the data indicating the corrected image 33 b is added to the data indicating the integrated image 35 a , so as to generate an integrated image 35 b.
- Data indicating a corrected image 33 c is generated by deleting an image of the bright part 38 d and correcting the shaking motion.
- the data indicating the corrected image 33 c is added to the data indicating the integrated image 35 b , so as to generate data indicating an integrated image 35 c.
- the data indicating the integrated image 35 c is resized so as to generate data indicating an integrated image 35 d.
- a picture of a person in a night scene and the like is taken at a slow shutter speed using the stroboscope, an image of a face of the person exposed during a period at the slow shutter speed is overlapped onto an image of the face of the person at the time when the stroboscope emits the light (double exposure) so that the overlapped image is blurred.
- the correction of the shaking motion allows that the bright part such as a face of the person is not subjected to the double exposure. As a result, the bright part can be taken clearly.
- FIG. 5 shows a relationship between the number of pixels and the frame frequency.
- the frame rate (fps) can be increased. Further, when the transfer clock speed is increased by the clock control section 27 , the processing clock supply section 28 and the transfer clock supply section 32 , the frame rate (fps) can be increased.
- the present invention it is possible to substantially increase the frame rate by increasing the transfer clock or reducing the resolution at the time when the image is taken for the purpose of the correction of shaking motion, thereby eliminating an afterimage (image degradation) which is particularly caused by an electronic correction of the shaking motion.
- an afterimage image degradation
- the frame rate should be higher than or equal to 20 fps. Otherwise, it is difficult to eliminate the afterimage which is particularly caused by the electronic correction of the shaking motion.
- FIG. 6 shows a structure of the image pickup section 5 including a pixel region divided into four parts.
- the image pickup section 5 includes a pixel region 40 .
- the pixel region 40 is divided into four pixel regions (i.e. pixel region 40 a , pixel region 40 b , pixel region 40 c and pixel region 40 d ).
- the image pickup section 5 further includes a horizontal transfer section divided into four parts (i.e. horizontal transfer section 41 a , horizontal transfer section 41 b , horizontal transfer section 41 c and horizontal transfer section 41 d ) and a vertical transfer section divided into four parts (i.e. vertical transfer section 42 a , vertical transfer section 42 b , vertical transfer section 42 c and vertical transfer section 42 d ).
- the image pickup section 5 may be divided into two parts in a transverse direction.
- FIG. 7 is a diagram showing an operation in the case where the frame rate is increased according to an embodiment of the present invention.
- an amount of the shaking motion in the x-direction is represented by ⁇ 0 (x i +x i+1 )dt ⁇ ((x 1 +x 2 )+(x 3 +x 4 ))/2.
- the amount of the shaking motion in the x-direction is represented by (x 1 +x 2 +x 3 +x 4 +x 5 +x 6 +x 7 +x 8 )/8 ⁇ ((x 1 +x 2 +x 3 +x 4 )/2+(x 5 +x 6 +x 7 +x 8 )/2)/4.
- the frame rate is increased to obtain a large number of frames.
- the image pickup apparatus of the present invention it is possible to correct the shaking motion over information indicating a plurality of frames and to generate information indicating a static image. Therefore, it is possible to obtain a static image subjected to the correction of the shaking motion.
- the shaking motion detecting section 15 corresponds to “a shaking motion detecting section for detecting an amount of the shaking motion between a plurality of frames representing the static image which has been taken”
- the shaking motion correcting section 9 corresponds to “a shaking motion correcting section for correcting a plurality of frame information indicating the plurality of frames in accordance with the detected amount of the shaking motion”
- the main image memory 30 corresponds to “a storage section for storing the plurality of frame information subjected to the correction of the shaking motion”
- the calculating section 29 corresponds to “an information generating section for generating static image information indicating a static image based on the plurality of frame information stored in the storage section”.
- the image pickup apparatus of the present invention is not limited to the embodiment shown in FIGS. 1 to 7 .
- Each of the components included in the image pickup apparatus can have an arbitrary configuration as long as the image pickup apparatus has each function of the “the shaking motion detecting section for detecting an amount of the shaking motion between a plurality of frames representing a static image which has been taken”, “the shaking motion correcting section for correcting a plurality of frame information indicating the plurality of frames in accordance with the detected amount of the shaking motion”, “the storage section for storing the plurality of frame information subjected to the correction of the shaking motion”, and “the information generating section for generating static image information indicating a static image based on the plurality of frame information stored in the storage section”.
- FIG. 8 shows a procedure of an image pickup process (step 50 a to Step 50 f ) according to an embodiment of the present invention.
- FIG. 9 shows a procedure of an image pickup process (step 51 a to Step 51 y ) according to an embodiment of the present invention.
- FIG. 10 shows a procedure of an image pickup process (step 52 a to Step 52 t ) according to an embodiment of the present invention.
- steps 50 a to 50 f will be described below.
- Step 50 a An operator prepares to take a still picture.
- Step 50 b When the operator presses the shutter button 25 halfway down, the CPU 26 provides an instruction to the clock control section 27 , such that the processing clock supply section 28 starts the operation of a clock or increases a clock speed in the calculating section and the like.
- the processing clock supply section 28 starts the operation of the clock or increases the clock speed in the calculating section 29 and the like, the process proceeds to step 50 c.
- Step 50 c The image pickup section 5 obtains an image having a smaller resolution than a set resolution or a decimated image.
- Information indicating a positional difference in a specific point or a specific region between the (n ⁇ 1)-th image and the n-th image is generated based on the data indicating the (n ⁇ 1)-th image and the data indicating the n-th image, so as to obtain shaking motion information (an amount of shaking motion).
- Step 50 d It is determined whether or not the shaking motion information (the amount of shaking motion) is larger than a predetermined value under the condition that the brightness in the place where the still picture is to be taken is low and the set resolution is greater than or equal to a constant value. If the shaking motion information is larger than the predetermined value (Yes), then the process proceeds to step 50 e . If the shaking motion information is smaller than or equal to the predetermined value (No), then the process proceeds to step 50 f.
- the shaking motion information the amount of shaking motion
- Step 50 e A warning of “Beware of shaking motion.” is displayed on the display section 12 in accordance with the value of the shaking motion information.
- Step 50 f The operator determines whether or not he/she presses the shutter button 25 down. If the operator presses the shutter button 25 down (Yes), then the process proceeds to step 51 a (see FIG. 9 ). If the operator does not press the shutter button 25 down (No), the process of the step 50 f is repeated.
- steps 51 a to 51 y will be described below.
- Step 51 a It is determined whether or not a shutter speed (exposure time) is longer than t 1 .
- the CPU 26 determines whether or not the shutter speed (the exposure time) is longer than t 1 .
- step 51 b If the shutter speed (the exposure time) is shorter than or equal to t 1 under the condition that the zoom ratio of the zoom section 6 is smaller than or equal to a constant value (No), then the process proceeds to step 51 b . If the shutter speed (the exposure time) is longer than t 1 (Yes), then the process proceeds to step 51 d.
- Step 51 b A picture is taken without correcting shaking motion (without correcting shaking motion).
- Step 51 c Taking a picture is completed and the process is terminated.
- Step 51 d The shaking motion correction priority switch is turned ON.
- Step 51 e It is determined whether or not the shutter speed (the exposure time) is longer than t 2 .
- step 51 f If the shutter speed (the exposure time) is shorter than or equal to t 2 (No), then the process proceeds to step 51 f . If the shutter speed (the exposure time) is longer than t 2 (Yes), the process proceeds to step 51 h.
- Step 51 f It is determined whether or not the shaking motion occurs radically, and whether or not the zoom ratio is higher than or equal to a constant value.
- step 51 g If the shaking motion does not occur radically and the zoom ratio is higher than the constant value (No), then the process proceeds to step 51 g . If the shaking motion occurs radically and the zoom ratio is lower than or equal to the constant value (Yes), then the process proceeds to step 51 i.
- Step 51 g The process proceeds to a routine for correcting the shaking motion (step 51 r ) while a resolution is set to be a preset resolution N 0 .
- Step 51 h It is determined whether or not the set resolution N 0 is higher than a predetermined resolution N 1 .
- step 51 r If the set resolution N 0 is lower than or equal to the predetermined resolution N 1 (No), then the process proceeds to the step 51 r . If the set resolution N 0 is higher than the predetermined resolution N 1 (Yes), then the process proceeds to step 51 i.
- Step 51 i The speed of the transfer clock of the pixel transfer section 23 is increased by the clock control section 27 . Thus, the frame rate is increased.
- Step 51 j It is determined whether or not the shaking motion occurs radically.
- step 51 k If the shaking motion does not occur radically and the zoom ratio is lower than or equal to the constant value, that is, the shaking motion is very small (No), then the process proceeds to step 51 k . If the shaking motion occurs radically or the zoom ratio is higher than the constant value, that Is, the shaking motion occurs radically to some extent (Yes), then the process proceeds to step 51 m.
- Step 51 k The process proceeds to step 51 r while the resolution is set to be the predetermined resolution N 1 .
- Step 51 m It is determined whether or not the set resolution is higher than a predetermined resolution N 2 , or it is determined whether or not the frame rate is lower than a predetermined value fn.
- step 51 r If the set resolution is lower than or equal to the predetermined resolution N 2 , or the frame rate is higher than or equal to the predetermined value fn (No), then the process proceeds to step 51 r.
- step 51 n If the set resolution is higher than the predetermined resolution N 2 , or the frame rate is lower than the predetermined value fn (Yes), then the process proceeds to step 51 n.
- Step 51 n The process proceeds to step 51 p in order to set the resolution to be the resolution N 2 which is lower than the predetermined resolution N 1 .
- Step 51 p By the resolution changing section 24 and the decimation control section 25 a , a pixel output from the image pickup section 5 is decimated or information indicating a plurality of pixels in the in-plane direction is added to each other to generate information indicating one pixel, thereby decreasing the number of pixels (i.e. decreasing the resolution) (the resolution is set to be the resolution N 2 ).
- Step 51 q As a result of setting the resolution to be the resolution N 2 which is lower than the predetermined resolution N 1 , a value of the highest speed of the frame rate is increased. The frame rate is increased.
- Step 51 r It is determined whether or not an input of an image to the routine for correcting the shaking motion is started in order to take a plurality of frames (images) into the image pickup apparatus 100 . If the input of the image is started (Yes), the process proceeds to step 51 y.
- Step 51 y The total number of frames n last required for a dividing exposure is calculated based on exposure time (i.e. a shutter time), a diaphragm value and a frame rate.
- exposure time i.e. a shutter time
- diaphragm value i.e. a diaphragm value
- Step 51 u The n-th image is taken, and the n-th static image from the image pickup section 5 is stored into the sub-memory 8 (i.e., n-th static image data is obtained).
- Step 51 v It is determined whether or not the static image data is the 1st static image data.
- step 51 w If the static image data is the 1st static image data (Yes), then the process proceeds to step 51 w . If the static image data is not the 1st static image data (No), then the process proceeds to step 52 a (see FIG. 10 ).
- Step 51 w A part of the image of the image pickup section 5 is cut out to obtain image data I 1 .
- Step 51 x The image data I 1 is stored in the main image memory 30 .
- steps 52 a to 52 t will be described below.
- Step 52 a The motion of a specific point between the first image data and the second image data is calculated by the shaking motion detecting section 15 so as to obtain a shaking motion amount Mn (see FIG. 2 ).
- the shaking motion detecting section 15 detects a shaking motion amount M 1 (e.g. a motion vector (x1, y1)) between the image D 1 and the image D 2 based on the image data indicating two images (i.e. the image data indicating the image D 1 and the image data indicating the image D 2 ) and outputs data indicating the shaking motion amount.
- a shaking motion amount M 1 e.g. a motion vector (x1, y1)
- Step 52 b It is determined whether or not the integral value of the shaking motion amount Mn is greater than or equal to a constant value.
- step 52 c If the integral value of the shaking motion amount Mn is greater than or equal to the constant value (Yes), then it is determined that the taken image gets out of a specific region and the process proceeds to step 52 c . If the integral value of the shaking motion amount Mn is smaller than the constant value (No), then the process proceeds to step 52 s.
- Step 52 c A value of “1” (one) is added to the value stored in the error register.
- the n-th image is not stored in the main image memory 30 , and the process proceeds to step 52 h.
- Step 52 s It is determined whether or not the integral value of the shaking motion amount Mn is greater than or equal to another constant value. If the integral value of the shaking motion amount Mn is greater than or equal to another constant value, then a value of “1” (one) is added to the value stored in the second error register.
- Step 52 d Image data I n , which is cut out from the image data output from the image pickup section 5 in the longitudinal direction in accordance with the shaking motion amount Mn, is stored in the sub-image memory 8 .
- Step 52 e It is determined whether or not the stroboscope is turned ON. If the stroboscope is turned ON (Yes), then the process proceeds to step 52 f . If the stroboscope is not turned ON (No), then the process proceeds to step 52 g.
- Step 52 f The image data In is previously masked by the masking section 20 (see FIGS. 4 and 3 . Masking operation).
- Step 52 g The image data I n , subjected to the correction of the shaking motion in the lateral direction and the correction of the shaking motion in the longitudinal direction, is obtained from the shaking motion correcting section 9 .
- the image data In is sent to the calculating section 29 and a calculation (e.g. addition, integration) is performed on the image data stored in the main image memory 30 and the image data I n , and the calculation result is stored back into the main image memory 30 .
- a calculation e.g. addition, integration
- Step 52 i The frequency of the transfer clock of the image pickup section 5 is lowered by the clock control section 27 .
- the transfer clock of the image pickup section 5 may be stopped in order to reduce power consumption.
- Step 52 j It is determined whether or not the value stored in the second error register is greater than or equal to a constant value.
- step 52 n If the value stored in the second error register is smaller than the constant value (No), then the process proceeds to step 52 n . If the value stored in the second error register is greater than or equal to the constant value (Yes), then the process proceeds to step 52 k.
- Step 52 k It is determined whether or not a lacking part can be eliminated (whether or not the range of the lacking part is within the range in which the lacking part can be eliminated) by resizing an integrated image.
- a lacking part 34 a is generated in the corrected image 33 c (see FIG. 4 ).
- a lacking part 34 b is also generated in the integrated image 35 c . Accordingly, it is necessary to resize the integrated image 35 c in order to eliminate the lacking part 34 b . In this case, it is determined whether or not the lacking part 34 b can be eliminated (whether or not the range of the lacking part 34 b is within the range in which the lacking part 34 b can be eliminated) by resizing the integrated image 35 c.
- step 52 m If the lacking part can be eliminated (Yes), then the process proceeds to step 52 m . If the lacking part cannot be eliminated (No), then the process proceeds to step 52 p.
- Step 52 m The lacking part 34 b is eliminated by resizing the integrated image 35 c , so as to obtain an integrated image 35 d having no lacking part (see FIG. 4 ).
- Step 52 n The data indicating the integrated image 35 d is recorded on the recording medium 14 .
- Step 52 p Even if the correction of the shaking motion is performed, the lacking part cannot be eliminated. Therefore, an operator is notified of the failure to correct the shaking motion. For example, the statement having the meaning of “Error in the shaking motion correction (out of range)” is displayed on the display section 12 (see FIG. 1 ). Further, an error warning sound is output from the speaker 37 . Further, the vibrator 36 is vibrated.
- Step 52 q It is determined whether or not the main display setting is turned ON.
- step 52 r If the main display setting is turned ON (Yes), then the process proceeds to step 52 r . If the main display setting is not turned ON (No), then the process proceeds to step 52 t.
- Step 52 r The integrated image subjected to the correction of the shaking motion, which is stored in the main image memory 30 , or the resized image is displayed on the display section 12 .
- Step 52 t The image subjected to the correction of the shaking motion is recorded on the recording medium 14 .
- the process returns back to the initial step 50 a (see FIG. 8 ).
- information indicating a plurality of frames can be subjected to the correction of the shaking motion and information indicating a static image can be generated.
- information indicating a static image can be generated.
- step 52 a corresponds to “the step of detecting an amount of shaking motion between a plurality of frames representing a static image which is taken”
- steps 52 b to 52 g correspond to “the step of correcting a plurality of frame information indicating the plurality of frames in accordance with the detected amount of the shaking motion”
- step 52 g corresponds to “the step of staring the plurality of frame information subjected to the correction of the shaking motion”
- step 52 g or step 52 m corresponds to “the step of generating static image information indicating a static image based on the plurality of frame information stored in the storage section”.
- the image pickup method of the present invention is not limited to the embodiment shown in FIGS. 8 to 10 .
- Each of the steps included in the image pickup method can be processed in any arbitrary manner as long as the image pickup method has the functions of “detecting an amount of shaking motion between a plurality of frames representing a static image which is taken”, “correcting a plurality of frame information indicating the plurality of frames in accordance with the detected amount of the shaking motion”, “storing the plurality of frame information subjected to the correction of the shaking motion”, and “generating static image information indicating a static image based on the plurality of frame information stored in the storage section”.
- the calculating section 29 sequentially calculates each of a plurality of image data (frame information) stored in the main image memory 30 , thereby generating static image information.
- the calculating section 29 may simultaneously calculate a plurality of image data (frame information) stored in the main image memory 30 , thereby generating the static image information.
- FIG. 11 shows a procedure of a sequential calculation process according to an embodiment of the present invention.
- each of a plurality of image data (frame information) is sequentially calculated to generate static image information.
- step by step the procedure of the sequential calculation process after the preparation of taking a picture is completed (the process starting from step 51 s in FIG. 9 ) will be described below step by step.
- Step 10 c The n-th image is taken, and the n-th image is stored into the sub-memory 8 .
- Step 10 d The n-th image is subjected to the correction of the shaking motion so as to obtain an image P n which has been subjected to the correction of the shaking motion.
- Step 10 e The calculating section 29 multiplies the data indicating the image P n subjected to the correction of the shaking motion by m (P n ⁇ m).
- Step 10 g The result of the addition is stored in the main image memory 30 .
- Step 10 j The generated image data P x is output to the recoding section 13 .
- each of the image data is sequentially calculated to generate static image information. Therefore, it is possible to shorten the time required for generating the static image information.
- the calculating section 29 adds the data indicating the pixel P n multiplied by m to the image data stored in the main image memory 30 and the sub-calculating section 29 a multiplies, by 1/s, the image data multiplied by m and added sequentially so as to generate image data P x indicating a static image.
- FIG. 12 shows a procedure of a simultaneous calculation process according to an embodiment of the present invention.
- a plurality of image data (frame information) are simultaneously calculated, thereby generating static image information.
- Step 20 c The n-th image is taken.
- Step 20 d The data indicating the n-th image is stored in the main image memory 30 .
- Step 20 f The n number of images are subjected to the correction of the shaking motion.
- the respective pixels of the n number of images subject to the correction of the shaking motion are integrated so as to generate image data P x indicating one static image.
- Step 20 g The generated image data P x is output to the recording section 13 .
- the image data can be appropriately multiplied by m and 1/s by the sub-calculating section 29 a . Accordingly, it is possible to obtain a single still picture having a desired brightness.
- FIG. 13 shows a procedure of a process for correcting the shaking motion by integrating a plurality of images (divided images) in accordance with a shutter speed (exposure time) and a brightness in the place where a picture is to be taken.
- Step 99 a The resolution, the number of pixels and the number of divided images are set, respectively.
- Step 99 b It is determined whether or not the shaking motion correction priority switch is turned ON.
- step 80 C see FIG. 19 described later
- the process proceeds to step 99 c.
- Step 99 c It is determined whether or not a brightness in the place where a picture is to be taken is smaller than a predetermined value defined in accordance with a resolution.
- step 99 f If the brightness is smaller than the predetermined value (Yes), then the process proceeds to step 99 f . If the brightness is greater than or equal to the predetermined value (No), then the process proceeds to step 99 d.
- Step 99 d It is determined whether or not a shutter opening time (exposure time) S is greater than a predetermined value defined in accordance with the resolution.
- step 99 f If the shutter opening time S is greater than the predetermined value (Yes), then the process proceeds to step 99 f . If the shutter opening time S is smaller than or equal to the predetermined value (No), then the process proceeds to step 99 e.
- Step 99 e It is determined whether or not the amount of shaking motion is larger than a predetermined value.
- step 99 f If the amount of shaking motion is larger than the predetermined value (Yes), then the process proceeds to step 99 f . If the amount of shaking motion is smaller than or equal to the predetermined value (No), then an normal process for taking a picture (a process for taking a picture without adding pixels in the time axis direction) is performed (step 99 m ).
- Step 99 f A resolution (a threshold resolution) N 1 at which the shaking motion is not conspicuous is set in accordance with at least one of the brightness in the place where a picture is to be taken, the shutter opening time (exposure time) and the frame rate.
- step 99 g After the resolution is set, the process proceeds to step 99 g.
- Step 99 g It is determined whether or not the resolution N 1 is greater than an initial resolution N 0 .
- step 99 m a normal process for taking a picture (a process for taking a picture without adding pixels in the time axis direction) is performed (step 99 m ). If the resolution N 1 is smaller than or equal to the initial resolution N 0 , then the process proceeds to step 99 h.
- Step 99 h The resolution N 1 is changed to a resolution N 2 which is smaller than the initial resolution N 0 .
- Step 99 i The resolution is set to be N 2 by performing at least one of adding pixels in a horizontal direction (a horizontal addition process) and adding pixels in a vertical direction (a vertical addition process). The details of the horizontal addition process and the vertical addition process will be described later.
- Step 99 j The frame rate is increased.
- Step 99 k Multiple exposure is performed in an overlapped manner (time axis direction, a pixel addition mode). Next, the process proceeds to step 51 y (see FIG. 9 ), for example.
- FIG. 14 shows a procedure of a process for changing a resolution by adding pixels in the in-plane direction and adding pixels in the time axis direction.
- Step 70 a The data indicating nine pixels (pixels 60 a to 601 ) within the image pickup element are added in the in-plane direction so as to generate data indicating one pixel 62 .
- Step 70 b Virtual addresses are set such that the number of the virtual addresses is greater than the number of actual addresses (virtual addresses axe set by increasing the amount of the actual addresses).
- a virtual cutout part 65 is set in accordance with information for correcting the shaking motion (shaking motion information).
- Step 70 c The data indicating image 61 is shifted over the virtual addresses in accordance with the information for correcting the shaking motion.
- data indicating anew pixel 66 is generated based on data indicating the original pixel 62 and data indicating surrounding pixels.
- FIG. 15 shows a principle for correcting the shaking motion by setting the number of pixels which is larger than the number of actual pixels according to an embodiment of the present invention.
- the amount of shaking motion correction has a resolution of 1/10 of the pixel.
- virtual pixels 67 are generated by dividing the pixel 62 into 10 parts and the virtual pixels 67 are shifted.
- step 70 d After the virtual pixels 67 are shifted over a virtual space, the process proceeds to step 70 d.
- Step 70 d An image is cut out.
- Step 70 e The data indicating a cutout image 64 is obtained.
- the data indicating a protruded part 68 is discarded.
- Step 70 f The data indicating the cutout image 64 is stored in the main image memory 30 .
- the amount of the correction of the shaking motion is stored in the main image memory 30 .
- Step 70 g When data indicating a new image 61 a is input, the same process of steps 70 a to 70 d is performed.
- Step 70 h The data indicating the cutout image 64 a is obtained based on the amount of the correction of the shaking motion.
- Step 70 i The data indicating a synthetic image 71 is obtained by adding (or integrating) data indicating pixels of the cutout image 64 and data indicating pixels of the cutout image 64 a in the time axis direction.
- Step 70 j The data indicating the synthetic image 71 is stored in the main image memory 30 .
- Step 70 k When data indicating a new image 61 b is input, the same process of steps 70 a to 70 e is performed. Data indicating a cutout image 64 b is obtained.
- Step 70 m The data indicating a synthetic image 71 a is obtained by adding data indicating pixels of the synthetic image 71 and data indicating pixels of the cutout image 64 b in the time axis direction.
- Step 70 n A shaking motion correction amount 72 is generated by calculating a first shaking motion correction amount 69 , a second shaking motion correction amount 69 a and a third shaking motion correction amount 69 b .
- An overlapping region 73 in which three images are added in an overlapped manner is specified from the synthetic image 71 a based on the shaking motion correction amount 72 .
- Step 70 p An enlarging interpolation is performed by performing a zooming calculation on the data indicating the overlapping region 73 . As a result, data indicating an enlarged image 74 is obtained. The details of the enlarging interpolation and the reducing interpolation will be described later.
- the data indicating the static image 74 subjected to the correction of the shaking motion is obtained and the process is completed.
- the number of the images to be integrated is not limited to be three.
- By integrating the larger number of images it is possible to take a picture in a dark place.
- FIG. 16 shows a method for adding pixels in the in-plane direction.
- the addition in the in-plane direction includes an addition in a vertical direction and an addition in a horizontal direction.
- FIG. 16( a ) shows a method for the addition in the vertical direction.
- a vertical addition process is performed on R (red) (m, n+1) and R (m, n) so as to generate R (m, n+1)+R (m, n).
- FIG. 16( b ) shows a method for the addition in the horizontal direction. Pixels for the same color are added to each other in the horizontal direction. For example, a horizontal addition process is performed on G (m, n+1)+G (m, n) and G (m+1, n+1)+G (m+1, n) so as to generate G (m, n+1)+G (m, n)+G (m+1, n+1)+G (m+1, n).
- FIG. 17 is a diagram for explaining a shift of the cutout position of an image.
- the addition switching section 102 a and the addition switching section 102 b switch an addition mode between an A mode 103 and a B mode 104 in accordance with the correction signal or a detection signal (shaking motion information) output from the shaking motion detecting section 15 (see FIG. 1 ).
- a detection signal (shaking motion information) output from the shaking motion detecting section 15 (see FIG. 1 ).
- FIG. 18 shows a principle of a reducing interpolation, a principle of an enlarging interpolation and a principle of correcting the shaking motion with a high resolution.
- FIG. 18( a ) shows the principle of the reducing interpolation. It is possible to obtain a plurality of (six) pixels as the result of the reducing interpolation from the original (eight) pixels.
- FIG. 18( b ) shows the principle of the enlarging interpolation. It is possible to obtain a plurality of (eight) pixels as the result of the enlarging interpolation from the original (six) pixels.
- FIG. 18( c ) shows the principle of correcting the shaking motion with a high resolution.
- FIG. 19 shows a procedure of a process for removing an image for which the detection of the shaking motion fails.
- Step 80 a It is determined whether or not a shutter speed (exposure time) is longer than t′.
- step 80 b If the shutter speed (the exposure time) is longer than t′ (Yes), then the process proceeds to step 80 b.
- Step 80 b It is determined whether or not the shaking motion occurs radically.
- step 80 c If the shaking motion does not occur radically (No), then the process proceeds to step 80 c . If the shaking motion occurs radically (Yes), then the process proceeds to step 80 d.
- Step 80 c A picture is taken while the resolution is set to a resolution which is preset.
- Step 80 d It is determined whether or not the correction of the shaking motion is performed with priority. If the setting for performing the correction of the shaking motion is turned ON (Yes), then the process proceeds to step 80 e . If the setting for performing the correction of the shaking motion is not turned ON (No), then the process proceeds to step 80 c.
- Step 80 e A shaking motion correction mode is displayed.
- Step 80 f It is determined whether or not the exposure time t is set to be t 1 ⁇ t ⁇ t 2 .
- step 81 d the exposure time t is set to be t 1 ⁇ t ⁇ t 2 (Yes)
- the process proceeds to the step 81 d .
- the pixels are added in the in-plane direction (step 81 d )
- the exposure time t is set to be t ⁇ t 1 (step 81 e ) and taking a picture is started (step 81 f ).
- step 80 g it is determined whether or not the exposure time is set to be t 2 ⁇ t ⁇ t 3 . If the exposure time t is not set to be t 2 ⁇ t ⁇ t 3 (No), then the process is stopped (step 81 g ). If the exposure time t is set to be t 2 ⁇ t ⁇ t 3 (Yes), then the process proceeds to step 80 h.
- Step 80 h The setting for adding pixels in the in-plane direction is performed.
- Step 80 i The exposure time t is set to be t ⁇ t 2 and the number of pixels P to be taken for the correction of the shaking motion is obtained.
- Step 80 j Taking a picture is started.
- Step 80 n The pixels in the n-th image are added in the in-plane direction.
- Step 80 p The shaking motion is detected.
- Step 80 q It is determined whether or not the shaking motion is successfully detected.
- step 80 u If the detection of the shaking motion is successful (Yes), then the process proceeds to step 80 u.
- Step 80 u The corrected image is stored in the main image memory 30 .
- Step 80 x The corrected images stored in the main image memory 30 are added or integrated in the time axis direction.
- Step 80 y Data indicating one image is generated.
- Step 80 z A process such as a decimation process is performed on the generated data indicating one image, and the result is displayed on the display section 12 .
- Step 81 a An operator determines whether or not an image storage switch is turned ON.
- Step 81 b A compression process (e.g. JPEG and the like) is performed on the image data indicating an image so as to reduce the amount of the image data.
- a compression process e.g. JPEG and the like
- Step 81 c The image data is recorded on the recording medium 14 (e.g. an IC card).
- the recording medium 14 e.g. an IC card
- the embodiment of the present invention it is possible to prevent the addition (integration) of the corrected image data for which the detection of the shaking motion fails. For example, in the case where it is difficult to detect the failure such as a failure to detect the addition (integration) of pixels in the time axis direction, it is possible to obtain an image subjected to the correction of the shaking motion. Further, it is possible to start the integration in the time axis direction from a next image to the image for which the detection of the shaking motion fails. Therefore, the use of time is more efficient.
- FIG. 20 shows a structure of an image pickup apparatus 200 according to an embodiment of the present invention.
- the image pickup apparatus 200 can display an amount of the correction of the shaking motion in a similar manner as the image pickup apparatus 100 .
- the image pickup apparatus 200 includes a shaking motion amount calculating section 92 , a locus calculating section 91 , a display section 95 , a speaker 97 , a vibrator 98 , a CPU 99 , an oscillating gyro 101 a , and an oscillating gyro 101 b.
- the shaking motion amount calculating section 92 calculates a shaking motion amount and outputs the shaking motion amount to the display section 95 via a display circuit.
- the locus calculating section 91 calculates a locus of the shaking motion which cannot be perfectly corrected by the shaking motion correction and outputs the locus to the display section 95 via the display circuit.
- the CPU 99 determines whether or not the shaking motion amount is larger than a predetermined value. If the shaking motion amount is larger than the predetermined value, then it instructs at least one of the display section 95 , the speaker 97 and the vibrator 98 to output the determination result.
- the display section 95 displays the determination result in accordance with the instruction from the CPU 99 .
- the speaker 97 generates a warning sound in accordance with the instruction from the CPU 99 .
- the vibrator 98 vibrates in accordance with the instruction from the CPU 99 .
- FIG. 21 shows an example of a display section 95 included in the image pickup apparatus 200 .
- the shaking motion amount is displayed by indicators 93 , 93 a , 93 b and 93 c .
- a person who takes a picture can recognize a shaking motion amount and a shaking motion direction.
- the person can change a method for fixing a camera. As a result, it is possible to obtain a static image containing shaking motion less than usual by the human operation.
- FIG. 22 shows another example of a display section 95 included in the image pickup apparatus 200 .
- the locus of the shaking motion which cannot be perfectly corrected by the shaking motion correction is displayed, like a locus 94 b and a locus 94 d .
- a person who takes a picture can recognize the degree of a static image subjected to the shaking motion after taking a picture.
- the failure of the shaking motion correction can be confirmed by a small display section of the camera. Therefore, the person can check the failure of the shaking motion correction.
- a filming mode e.g. panning or panoramic view
- a shaking motion amount (x, y) is larger than a predetermined value (x 0 , y 0 ) ((x>x 0 or y>y 0 ) or (x>x 0 and y>y 0 )), then a warning may be displayed. Further, the speaker may output a warning sound.
- the predetermined value (x 0 , y 0 ) is set, for example, in accordance with a zoom ratio.
- a shaking motion amount (x, y) is smaller than the predetermined value (x 0 , y 0 ) ((x ⁇ x 0 or y ⁇ y 0 ) or (x ⁇ x 0 and y ⁇ y 0 )), then a message (e.g. “OK”) maybe displayed. Further, the speaker may output a sound.
- the predetermined value (x 0 , y 0 ) is set, for example, in accordance with a zoom ratio.
- FIG. 23 shows a display of a boundary indicator 97 for taking a picture in a panning manner or in a panoramic manner.
- FIG. 23( a ) shows a scene to be taken, which is divided into three frames.
- FIG. 23( b ) shows a frame 98 a .
- FIG. 23( c ) shows a frame 98 b .
- FIG. 23( d ) shows a frame 98 c .
- FIG. 23( e ) shows a frame 98 d.
- the detection point 96 a When the scene shown in FIG. 23( a ) is to be taken in a panoramic manner in a rightward direction, the detection point 96 a , among the detection points 96 a , 96 b and 96 c (see FIG. 23( b )) which are representative points for detecting a motion vector for the shaking motion correction, is moved over the frames and reaches a left end of the frame 98 b (see FIG. 23( c )).
- the shaking motion detecting section 15 for detecting a motion detects that a screen is shifted to the right by L 1 , and a boundary indicator 97 a indicating a boundary of a right end of the frame in FIG. 23( b ) is displayed at a position spaced apart from a right end of the frame by L 1 (see FIG. 23( c )).
- the shaking motion detecting section 15 detects that the screen is shifted to the right by L 2 , and a boundary indicator 97 b is displayed at a position spaced apart from the right end of the frame by L 2 (see FIG. 23( d )).
- a boundary indicator 97 c is displayed at the left end of the screen in FIG. 23( e ).
- the person who takes a picture can know that a current position reaches the next position where the next picture is to be taken. If necessary, it is possible to output a sound alert from the speaker 37 (see FIG. 1) , thereby notifying the person of the sound alert. At this time, the person can take a picture of panoramic form almost perfectly by pressing down the shutter button.
- the method has been described for setting a plurality of detection points over the screen and determining the movement of the person who takes a picture as a motion in the frame from the motion vector of the detection points.
- the detection of a panning is performed by the shaking motion detecting section for correcting the shaking motion.
- the image pickup apparatus for detecting the shaking motion by using the oscillating gyro 101 a and the oscillating gyro 101 b it is also possible to detect a panning rotation angle of the person by the oscillating gyros and to obtain a rotation angle ⁇ 0 required for the panning in a transverse direction for one frame in accordance with the zoom ratio of the zoom detecting section.
- the boundary indicator 97 is displayed at the right end.
- the person takes a picture for the first frame in the panoramic picture.
- the person performs the panning (i.e. rotation) of the camera by the rotation angle ⁇ 0 in the rightward direction, the person can know that a current position of the camera reaches a position where the person can take a picture for the second frame in the panoramic picture.
- the function described above can be also realized in a similar manner when the shaking motion detecting method is an electronic detecting method.
- FIG. 24 shows a detection point for detecting the shaking motion within a frame.
- a person who takes a picture can recognize the extent of the shaking motion.
- the person can change a method for fixing a camera.
- it is possible to obtain a static image having shaking motion which is less than that which would be usually observed by a human operation.
- the shaking motion detecting section 15 corresponds to “the shaking motion amount detecting section for detecting an amount of shaking motion between a plurality of frames representing a static image taken”
- the CPU 99 corresponds to “the determining section for determining whether or not the amount of the shaking motion is larger than a predetermined value”
- the display section 95 , the speaker 97 and the vibrator 98 correspond to “the output section for outputting a result of the determination”.
- the image pickup apparatus of the present invention is not limited to the embodiment shown in FIG. 1 and FIGS. 20 to 23 .
- Each of the components included in the image pickup apparatus can have an arbitral configuration as long as the image pickup apparatus has each of the functions of “the shaking motion amount detecting section for detecting an amount of shaking motion between a plurality of frames representing a static image taken”, “the determining section for determining whether or not the amount of the shaking motion is larger than a predetermined value”, and “the output section for outputting a result of the determination”.
- the shaking motions of the image pickup apparatus (camera) 1 caused by hand movements are detected by, for example, the angle velocity detecting sections 101 a and 101 b .
- the angle velocity detecting sections 101 a and 101 b output shaking motion detection signals indicating the shaking motions of the image pickup apparatus 1 .
- the angle velocity detecting sections 101 a and 101 b may be, for example, angle velocity sensors.
- the angle velocity sensors may be, for example, shaking motion gyroscopes respectively having a plurality of vibration frequencies which are different from each other.
- the shaking motion detection signals output from the angle velocity detecting sections 101 a and 101 b are sampled by the sampling circuit 102 at a sample frequency f s generated by the sample frequency generation section 104 .
- the analog data indicating the angle velocity is converted into digital data.
- the angle velocity detecting sections 101 a and 101 b function as a shaking motion detecting section for detecting the shaking motion of the image pickup apparatus 1 and for outputting a shaking motion detection signal indicating the shaking motion of the image pickup apparatus 1 .
- the angle velocity detecting sections 101 a and 101 b are merely an example of the shaking motion detecting section.
- the shaking motion detecting section may have any configuration as long as it has functions for detecting the shaking motion of the image pickup apparatus 1 and for outputting a shaking motion detection signal indicating the shaking motion of the image pickup apparatus 1 .
- the locus calculating section 91 obtains locus information indicating the locus of the shaking motion of the image pickup apparatus 1 , based on at least the shaking motion detection signal output by the shaking motion detecting section (e.g., the angle velocity detecting sections 101 a and 101 b ). For example, the locus calculating section 91 may obtain, as the locus information, information indicating a change in the shaking motion detection signal during a predetermined period of time. For example, in the case where the shaking motion detecting section includes an angle velocity sensor, the locus calculating section 91 may obtain angle information by integrating the output from the angle velocity sensor and may obtain, as the locus information, information indicating a change in the angle information during a predetermined period of time.
- the shaking motion correction section 115 functions as an electronic shaking motion correcting section for performing a calculation processing on the image information which is output from the image pickup section 5 and is stored in the image memory 120 and the locus information, so as to obtain corrected image information which is subjected to the correction of the shaking motion.
- the electronic shaking motion correcting section it is possible to provide a mechanical shaking motion correcting section for mechanically correcting the shaking motion of the image pickup apparatus 1 in accordance with the shaking motion detection signal output from the shaking motion detecting section (e.g., the angle velocity detecting sections 101 a and 101 b ), so as to obtain corrected image information which is subjected to the correction of the shaking motion by an actual shaking motion correction amount.
- the locus calculating section 91 obtains, as the locus information, information indicating the change during a predetermined period of time in the difference between the shaking motion detection signal and the actual shaking motion correction amount, for example.
- an electronic shaking motion correcting section which obtains second corrected image information which is subjected to the correction of the shaking motion in the first corrected image information by a second shaking motion correction amount, in addition to the mechanical shaking motion correcting section which obtains first corrected image information which is subjected to the correction of the shaking motion in the image information by a first shaking motion correction amount.
- the locus calculating section 91 obtains, as the locus information, information indicating the change in the remaining shaking motion amount during a predetermined period of time, the remaining shaking motion amount indicating the difference between the actual shaking motion correction amount and the first shaking motion correction amount, for example.
- FIG. 26( a ) shows a case where all samples are obtained at a normal uniform time interval (i.e., a predetermined sample frequency f s ).
- a sampling process is performed more finely at a double frequency of the sample frequency, namely at 2f s , as shown with the points 103 a and 103 b in FIG. 26( b ).
- a sampling process is performed more roughly at a half frequency of the sample frequency, namely at f s /2, as shown with the points 103 c and 103 d .
- a sampling process is performed in a standard fashion, at the frequency f s , as shown with the point 103 e.
- the sample frequency generated by the sample frequency generation section 104 is changed in accordance with the zoom ratio, the angle velocity amount, or how large the amount of change in the angle velocity is.
- the optimal sampling As a result, it is possible to obtain the locus data required for the shaking motion correction of the locus, without increasing the amount of information.
- the locus data 113 is recorded onto an external storage medium 105 , it is possible to make the volume of the stored data smallest.
- the data compression section 105 compresses the locus data output from the locus calculating section 91 .
- the method of compression is the same as the method of compression described above.
- the image pickup information addition section 106 adds data indicating a file format of the image pickup information, such as Exif data 107 , to the locus data compressed by the data compression section 105 .
- the output data generation section 110 generates output data by adding the data output from the image pickup information addition section 106 to the image P, which is subjected to the correction of the shaking motion, output from the corrected image output section 108 or the image data P′, which is not subjected to the correction of the shaking motion, directly output from the switching section 109 .
- the shaking motion amount measurement section 111 measures the shaking motion amount and generates a control signal for switching the switching section 109 in accordance with the measured shaking motion amount.
- the locus calculating section 91 includes a processing amount calculating section 116 for calculating a processing amount in the shaking motion correction section 115 and for generating a control signal for switching the switching section 109 in accordance with the calculated processing amount.
- the switching section 109 switches between out-putting the image data from the image pickup section 5 to the shaking motion correction section 115 and outputting the image data from the image pickup section 5 to the output data generation section 110 , in accordance with at least one of the control signal from the shaking motion amount measurement section 111 and the control signal from the processing amount calculating section 116 .
- the shaking motion amount measurement section 111 switches the switching section 109 such that the image data from the image pickup section 5 is directly output to the output data generation section 110 , by bypassing the shaking motion correction section 115 .
- the processing amount calculating section 116 switches the switching section 109 such that the image data from the image pickup section 5 is directly output to the output data generation section 110 , by bypassing the shaking motion correction section 115 .
- the output data generation section 110 generates the output data by adding the data output from the image pickup information addition section 106 (e.g. Exif data 107 including the locus data 113 for the shaking motion such as a Point Spread Function (PSF) or the like) to the image P′, which is not subjected to the correction of the shaking motion, output from the switching section 109 .
- the image pickup information addition section 106 e.g. Exif data 107 including the locus data 113 for the shaking motion such as a Point Spread Function (PSF) or the like
- the output data generation section 110 generates the output data by adding the data output from the image pickup information addition section 106 (e.g. Exif data 107 including the shaking motion locus data 113 such as a Point Spread Function (PSF) or the like) to the image P, which is subjected to the correction of the shaking motion, output from the corrected image output section 108 .
- the data output from the image pickup information addition section 106 e.g. Exif data 107 including the shaking motion locus data 113 such as a Point Spread Function (PSF) or the like
- the output data is recorded onto the external storage medium 114 by the output data output section.
- the recorded image data and the locus data 113 for the shaking motion can be processed in a personal computer which is provided on the outside of the camera 1 and which has a higher processing capability. As a result, it is possible to perform the post-processing of the shaking motion correction process even if the image data has a large amount of shaking motion and the amount of correction processing is large.
- the light incident to the camera 1 goes through the lens section 2 , the zoom section 2 a , and the focus section 2 b , so as to form an image on the image pickup section 5 .
- the shutter button 119 is pressed, the shutter 117 is temporarily closed by the shutter-open period control section 118 and is then opened again when the image pickup process is started.
- the shutter 117 is closed again.
- the image pickup data is obtained, the shutter is opened again.
- the image pickup data is temporarily stored into the image memory 120 .
- the switching section 109 performs the switching as described above.
- the limit processing capability of the camera is expressed as h 1
- the limit processing capability of the data processing method is expressed as h 2 .
- the shaking motion correction section 115 included in the camera cannot process the data.
- the data is directly sent to the output data generation section 110 .
- h 2 ⁇ h it is not possible to correct the shaking motion even if a high-speed CPU is used.
- the image data is sent to the output data generation section 110 , and an alarm sound or an alarm display indicating “take an image once again” is sent from the alarm section 145 to the speaker 37 or to the display section 12 .
- a correctable amount of shaking motion is denoted by h 1 .
- the image data is sent to the shaking motion correction section 115 .
- the shaking motion correction section 115 the image P, which is subjected to the correction of the shaking motion, is obtained as a result of a Fourier inverse transform performed by the Fourier inverse transform section 121 , using the weighted locus data 113 for shaking motion and the image P′ in which the shaking motion are present.
- the maximum shaking motion amount calculating section 122 calculates the maximum shaking motion amounts x 1 and x 2 in the x-direction, and the maximum shaking motion amounts y 1 and Y 2 in the y-direction, based on the pickup images 112 , 112 a , and 112 b (see FIG. 27( b )).
- the trimming section 123 generates a trimmed image 129 by trimming the perimeter part of the pickup image 112 by the size of x 1 , x 2 , y 1 , and y 2 , based on the maximum shaking motion amounts x 1 and x 2 in the x-direction, and the maximum shaking motion amounts y 1 and y 2 in the y-direction (see FIG. 27( c )).
- the number of pixels in the trimmed image 129 is smaller than the number of pixels in the pickup image 112 .
- the enlarging section 122 performs an enlarging processing so as to enlarge the image up to a predetermined number of pixels ( FIG. 27( d )).
- the center 126 a in the original image 112 shown in FIG. 27( a ) does not coincide with the center 126 in the trimmed image 129 shown in FIG. 27( c ).
- the center is shifted by (x 3 , y 3 ).
- the trimmed image 129 is converted into the trimmed image 129 a ( FIG. 27( e )) such that the center 126 a in the original image 112 shown in FIG. 27( a ) coincides with the center 126 a in the trimmed image 129 a shown in FIG. 27 ( e ).
- the trimmed image 129 a shown in FIG. 27 ( e ) is enlarged so as to become an output image 147 shown in FIG. 27( d ).
- a corrected image having the center 126 b which coincides with the center 126 a in the original image 112 is obtained.
- the image subjected to the correction of the shaking motion in this way is sent to the output data generation section 110 via the corrected image output section 108 . It is also sent to the switching section 124 .
- the switching section 124 switches between out-putting the image P′, which is not subjected to the correction of the shaking motion to the reducing section 125 , and outputting the image P, which is subjected to the correction of the shaking motion, output from the corrected image output section 108 to the reducing section 125 .
- the reducing section 125 reduces the image P′ or the image P by decreasing the number of pixels in the image P′ or the image P output from the switching section 124 , and displays the reduced image P′ or the reduced image P on the display section 12 . It is possible to display the locus of the shaking motion generated by the locus display section 126 in such a manner that the locus is overlapped with the image P′ or the image P on the display section 12 .
- the switching section 124 operates such that the reduced image P′ is displayed on the display section 12 immediately after the image is captured and that the reduced image P is displayed on the display section 12 when a predetermined period of time has elapsed after the image is captured and the correction of the shaking motion is completed.
- step 127 the n-th image is displayed.
- step 127 a the n-th image is captured.
- step 127 b the processing amount calculating section 116 calculates the time t p required for performing the shaking motion correction calculation.
- t p exceeds a reference value indicating that the processing is possible
- the process proceeds to step 127 c , where an alarm indicating “take an image once again” is issued.
- step 127 a the operator takes an image once again, and the process proceeds to step 127 b .
- the process proceeds to step 127 d .
- step 127 k the process proceeds to step 127 k , where the captured image before the correction of the shaking motion and the locus 129 of the shaking motion which occurs during the period of capturing the image are displayed on the display section 12 .
- a processing status indicator 130 is also displayed.
- the processing status indicator 130 displays an elapsed period of time from the start of the correcting processing, by expressing the full scale of the processing status indicator 130 as t f , where t f is the estimated processing period obtained by the processing amount calculating section 116 .
- the processing status indicator is displayed as indicated by the reference numeral 130 , and near the end of the processing, the indicator is displayed as indicated by the reference numeral 130 a .
- step 127 m when the correction of the shaking motion is completed, in step 127 n , the image P′, which is not subjected to the correction of the shaking motion, is switched to the image P, which is subjected to the correction of the shaking motion, by the switching section 124 shown in FIG. 25 , and the switched image is displayed on the display section 12 .
- step 127 e in the case where the shaking motion locus display switch is OFF, the image with shaking motion is displayed in step 127 f . In this case, the shaking motion locus is not displayed.
- Steps 127 g and 127 h are the same as steps 127 m and 127 n described above, and therefore the description thereof will be omitted.
- step 127 i an image from the image pickup section is reduced by the reducing section 125 , and the reduced image is displayed on the display section 12 .
- step 127 j the image pickup apparatus is ready to capture the next image.
- step 128 a the n-th image in the image pickup section is displayed.
- step 128 b when the shutter button is pressed, an image is captured.
- step 128 c the correction of the shaking motion in the n-th image is started.
- step 128 d the mark 131 a indicating that “the correction of the shaking motion in the n-th image is being performed” is displayed on the display screen 132 j .
- step 128 e the (n+1)-th image in the image pickup section is displayed on the display screen 132 j , and the processing status indicator 130 b is also displayed.
- step 128 f when (n+1)-th image is captured in the case where the correction of the shaking motion in the n-th image has not yet completed, in step 128 g , it is checked whether there is space available in the image memory 120 . In the case where there is no space available in the image memory 120 , the mark 133 indicating that “WAIT” is displayed in step 128 h , as shown in display screen 132 k , so that the user is stopped to capture the next image.
- step 128 j the locus data for the shaking motion is stored in the image memory 120 .
- step 128 k the mark 131 b indicating that “the correction of the shaking motion in the (n+1)-th image is being performed” and the (n+2)-th image are displayed, as shown in display screen 132 m .
- step 128 m when the correction process for the n-th image is completed, in step 128 n , the mark 131 a indicating that “the correction of the shaking motion in the n-th image is being performed” is eliminated as shown in display screen 132 n .
- step 128 p when the correction process for the (n+1)-th image is completed, in step 128 q , the mark 131 b indicating that “the correction of the shaking motion in the (n+1)-th image is being performed” is eliminated as shown in display screen 132 P. Then, the image pickup apparatus is ready to capture the (n+2)-th image.
- the locus information for the shaking motion should be accurate.
- the data from the angle velocity detecting sections 101 a and 101 b such as vibration gyroscopes are integrated by the integrator 136 , so that an integrated angle ⁇ is obtained.
- the zoom ratio information is obtained from the zoom section 6 , and the focus data is obtained form the focus adjustment section 137 .
- a focus f is calculated, and f ⁇ tan ⁇ is obtained, and a locus calculation is performed.
- corrected original image P is obtained using this locus data, by applying the image P′ having the shaking motion to a function obtained by performing a Fourier inverse transform on the locus function.
- This calculation may be performed using a two-dimensional filter 137 .
- an image obtained by adding the locus information for the shaking motion to the captured data such as Exif data is outputted. As shown in FIG.
- the package 152 of the camera 1 contains the image pickup apparatus 1 and a recording medium 151 , such as a CD-ROM.
- the shaking motion correction processing program 153 is recorded in the recording medium 151 .
- the user mounts the recording medium 151 into the computer 150 such that the correction processing program is installed from the recording medium 151 to the computer 150 .
- the captured image data and the Exif data including the locus information for the shaking motion are obtained from the camera 1 , so that these data are calculated to correct the shaking motion.
- the format of the image capturing information is not limited to the Exif format. It is possible to achieve the similar effect by the use of any other format for the image capturing information.
- the period of time required for the correction of the shaking motion is estimated by the processing amount calculating section 116 . Accordingly, it is possible to determine, in advance, whether or not the process can be performed within the camera itself. As a result, it is possible to display the time required for the correction process on the display section, and to improve the interface with the user by displaying the degree of the progress of the processing.
- a method for outputting the remaining shaking motion after the correction of the shaking motion, as Exif data, in a camera includes an shaking motion correction section for performing an optical correcting process or the like along the two axes (e.g., an x-axis and a y-axis) will be described.
- the shaking motion correction control section 141 outputs an shaking motion correction signal in accordance with the shaking motion data which has been detected in FIG. 30 .
- the lens driving section 140 drives the correcting lens 2 c in the x direction and in the y direction such that the shaking motion is corrected.
- this control system has a frequency response characteristic. Accordingly, the shaking motion is not corrected completely, and the remaining shaking motion still exists after the correction of the shaking motion. Further, when a common optical correcting method or a common CCD driving method is used, it is possible to perform the correction only in the x direction and in the y direction, and it is not possible to perform the correction in the z direction (the roll direction). In order to calculate the remaining shaking motion after the correction of the shaking motion, it is required that the shaking motion correction amount calculating section 142 obtains an actual correction amount from the lens driving section 140 , and then the actual correction amount is input to the difference sections 143 a and 143 b included in the difference section 143 .
- the angle velocity detecting section 101 includes an angle velocity detecting section 101 C for the z direction (the roll direction). The component in the x direction and the component in the y direction obtained by the angle velocity detecting section 101 are input to the difference section 143 .
- the locus information of the remaining shaking motions in the x and y directions is obtained.
- the data from the angle velocity detecting section 101 c for the z direction is integrated without calculating the difference and sent to the locus calculating section 91 so that locus information is obtained.
- the locus information 113 is displayed on the display section 12 in such a manner that the locus information 113 is overlaid over the captured image.
- the locus information is sent to the data compression section 105 so that the data is compressed.
- the compressed data is added to the image data to generate output data as Exif data 107 by the image pickup information addition section 106 .
- the generated output data is recorded onto the external storage medium 114 , such as an IC card, by the data output section 146 .
- the Exif data includes the remaining shaking motion after the correction of the shaking motion in the x and y directions and the locus information for the shaking motion in the z direction.
- a frequency response characteristic is present. Shaking motion is not so conspicuous in a normal photo size, but it is conspicuous in a large-size photo. According to the post-processing of the method described above, it is possible to correct the shaking motion almost completely. This is a remarkable effect.
- a first method includes calculating the locus data x, y, and z of the shaking motion within a camera and outputting the locus data as an Exif file such that the correction processing is performed in an external computer by way of data processing (see FIG. 30 ).
- a second method includes performing an optical correcting process in the x and y directions by the use of the shaking motion correction control section 141 in a camera having a function of correcting an optical shaking motion, calculating the locus data in the z direction (the roll direction) by the use of the locus calculating section 144 , and attaching the locus data as Exif data 107 to the image data (see FIG. 31 ).
- the correction of the shaking motion in the z direction by software within an external computer, it is possible to perform the correction of the shaking motion in the z direction without increasing the number of parts of the camera.
- a third method includes performing an optical correcting process in the x and y directions, calculating the locus data in the z direction (the roll direction) based on the data output from the angle velocity detecting section 101 c by the use of the locus calculating section 144 , performing the correction of the shaking motion in the z direction by the use of the shaking motion correction section 115 including the Fourier inverse transform section 121 or a Fourier transform section, such that the resultant data is recorded on an external storage medium 114 (see FIG. 32 ).
- the use of the Fourier inverse transform section is described. However, it is needless to say that a similar effect can be obtained by the use of a Fourier transform section.
- the shaking motions in the x and y directions may cause intense motions since they are enlarged by the zoom.
- the shaking motion in the z direction (the roll direction) causes gentle motion and is more stable. Accordingly, it is possible to perform the correction of the shaking motion in the z direction by the use of a CPU having a low processing capability.
- As the third method it is realistic to perform the correction of the shaking motion only the z direction by way of data processing.
- a fourth method includes performing an optical correcting process in the x and y directions, calculating the locus data for the remaining shaking motion which cannot be corrected, and adding the locus data as an Exif data to the captured image (see FIG. 30 ).
- the components of the shaking motion in the higher frequency band is eliminated by the optical correcting process, and the locus data for the remaining shaking motion after the correction of the shaking motion corresponds to only the components of the shaking motion in the lower frequency band. As a result, it becomes easier to perform the correction of the shaking motion by way of calculation processing.
- a fifth method is directed to performing all of the correction of the shaking motion by way of data processing within a camera (see FIG. 25 ).
- the locus calculating section 91 calculates the locus data of the remaining shaking motion by the use of the locus calculating section 91 , correct the shaking motion in the x, y, and z directions by way of data processing, using the locus data and the image data which is subjected to the optical correcting process in the x and y directions by the use of the shaking motion correction section 115 (see FIG. 33 ).
- the components of the shaking motion in the higher frequency band is eliminated by the optical correcting process.
- the image memory 120 is provided.
- the captured image is sequentially input to the image memory 120 , where a plurality of captured images are stored.
- the captured image which is not subjected to the correction of the shaking motion, is displayed on the display section 12 . This makes it possible for the operator to roughly check the captured image.
- the (n+1)-th image and the images thereafter are captured before the calculation for the correction of the n-th image is completed, the (n+1)-th image and the images thereafter are stored into the image memory 120 as shown in FIG. 25 or the like, and the (n+1)-th image and the images thereafter which have been captured most recently are displayed on the display section one after another.
- the shaking motion correcting lens 155 is driven by a driving motor 156 .
- a hall element 158 is provided as a lens position detecting section 157 in the vicinity of the shaking motion correcting lens 155 , such that the position of the shaking motion correcting lens 155 is magnetically detected, and then the shaking motion correction amount 159 is obtained.
- the control frequency characteristic 160 or a transfer function 161 of the shaking motion correcting section is calculated in advance. By inputting the shaking motion amount to this system, it is possible to electrically calculate the shaking motion correction amount 162 . In this case, it is possible to reduce the cost and simplify the configuration, since the shaking motion correction amount can be calculated by the use of only the electronic circuit, without using a mechanical system.
- H and h′ shown in FIG. 34 vary.
- H and h′ may be output, as Exif data, from the camera, together with the captured image. This method has a high degree of certainty, but the volume of the Exif data attached to each image is large, and involves a lot of waste.
- information regarding the locus function, H and h′, which are specific to each camera are recorded on the recording medium 151 , which is packaged together with the camera. In this case, it is possible to record the locus information, H and h′, which are specific to each camera, onto an external computer.
- the computer performs the correction of the shaking motion, it is possible to perform the optimal correction of the shaking motion without fail.
- the present invention is useful to provide an image pickup apparatus capable of obtaining the locus information required for the correction of the shaking motion, a product package including the image pickup apparatus and a recording medium having a program recorded thereon, and a semiconductor integrated circuit or the like.
- the locus information may be output to a device external to the image pickup apparatus (e.g., a computer).
- a device external to the image pickup apparatus e.g., a computer.
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Applications Claiming Priority (5)
Application Number | Priority Date | Filing Date | Title |
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JP2003-435934 | 2003-12-26 | ||
JP2003435934 | 2003-12-26 | ||
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EP (1) | EP1703721B1 (en) |
JP (1) | JP4005098B2 (en) |
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Also Published As
Publication number | Publication date |
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KR20070005576A (en) | 2007-01-10 |
EP1703721A1 (en) | 2006-09-20 |
JPWO2005064921A1 (en) | 2007-12-20 |
JP4005098B2 (en) | 2007-11-07 |
US20070291114A1 (en) | 2007-12-20 |
EP1703721B1 (en) | 2012-02-08 |
KR100859431B1 (en) | 2008-09-23 |
WO2005064921A1 (en) | 2005-07-14 |
ATE545275T1 (en) | 2012-02-15 |
EP1703721A4 (en) | 2011-02-16 |
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